45

I am pretty formatting a floating point number but want it to appear as an integer if there is no relevant floating point number.

I.e.

  • 1.20 -> 1.2x
  • 1.78 -> 1.78x
  • 0.80 -> 0.8x
  • 2.00 -> 2x

I can achieve this with a bit of regex but wondering if there is a sprintf-only way of doing this?

I am doing it rather lazily in ruby like so:

("%0.2fx" % (factor / 100.0)).gsub(/\.?0+x$/,'x')
3
  • 4 years later and I realized that that Regexp is subtly misleading. .gsub(/(\.0+)?x/, 'x') is probably better...
    – Bo Jeanes
    Dec 10, 2013 at 22:04
  • A lot of useless answers, the #gsub (actually #sub should be better) seems like the best option. idk why second expression should be better. If re doesn't match, then string stays the same. May 22, 2023 at 21:35
  • @akostadinov 14 years later, I completely agree. At the time, I was just trying to learn sprintf and thought there might be something that already did this. There isn't, and a regex is truly the simplest way to do this, IMO.
    – Bo Jeanes
    Jun 9, 2023 at 2:59

8 Answers 8

51

You want to use %g instead of %f:

"%gx" % (factor / 100.00)
2
  • 2
    awesome. works well in my scenario. Unfortunately though it seems that "%.3gx" doesn't work as I'd expect. the 3 is total digits, not maximum digits after the decimal point. That means 2.12345 will be 2.12 but 22.12345 will be 22.1 instead of 22.12. Luckily in my scenario it doesn't matter, but do you know a way around that?
    – Bo Jeanes
    May 8, 2009 at 4:38
  • 6
    Formatting with %g will give either the 'natural' representation of the number (without trailing zeros) or the scientific representation (whichever is shorter, basically). %.3g, as you pointed out, sets the total number of digits to 3 rather than setting the number of digits after the decimal point. If you want to control the number of digits after the decimal point you need to use %f, as %.3f specifies 3 digits after the decimal point (padding with 0, if necessary). Unfortunately, I don't know of a way to mix and match these two alternatives.
    – Naaff
    May 8, 2009 at 5:00
30

You can mix and match %g and %f like so:

"%g" % ("%.2f" % number)
1
  • 1
    This will change large numbers to scientific notation- i.e. 1000000 becomes '1e+06'
    – Yarin
    May 15, 2018 at 13:18
28

If you're using rails, you can use rails' NumberHelper methods: http://api.rubyonrails.org/classes/ActionView/Helpers/NumberHelper.html

number_with_precision(13.001, precision: 2, strip_insignificant_zeros: true)
# => 13
number_with_precision(13.005, precision: 2, strip_insignificant_zeros: true)
# => 13.01

Be careful, because precision means all digits after decimal point in this case.

0
6

I ended up with

price = price.round(precision)
price = price % 1 == 0 ? price.to_i : price.to_f

this way you even get numbers instead of strings

3

I just came across this, the fix above didnt work, but I came up with this, which works for me:

def format_data(data_element)
    # if the number is an in, dont show trailing zeros
    if data_element.to_i == data_element
         return "%i" % data_element
    else
    # otherwise show 2 decimals
        return "%.2f" % data_element
    end
end
3

Here's another way:

decimal_precision = 2
"%.#{x.truncate.to_s.size + decimal_precision}g" % x

Or as a nice one-liner:

"%.#{x.truncate.to_s.size + 2}g" % x
2

Easy with Rails: http://api.rubyonrails.org/classes/ActionView/Helpers/NumberHelper.html#method-i-number_with_precision

number_with_precision(value, precision: 2, significant: false, strip_insignificant_zeros: true)
-2

I was looking for a function to truncate (not approximate) a float or decimal number in Ruby on Rails, I figure out the follow solution to do that:

you guys can try in your console, the example:

>> a=8.88
>> (Integer(a*10))*0.10
>> 8.8

I hope it helps somebody. :-)

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